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Artificial Ageing of Photocatalytic Nanocomposites for the Protection of Natural Stones

机译:光催化纳米复合材料的人工老化,用于保护天然石材

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During the last ten years, photocatalytic nanocomposites combining titania nanoparticles with silicon-based matrices have received increasing attention in the stone conservation research field, because they offer an effective multifunctional approach to the issue of stone protection. However, much work still has to be done in studying the behaviour of these nanocomposites in real environmental conditions and understanding to what extent they are able to retain their effectiveness and compatibility once applied on outdoor surfaces. The latter is a key information that should lie at the basis of any successful conservation and maintenance campaign. The present study provides insight into this relevant topic trough laboratory testing by assessing the artificial ageing of two silane-based photocatalytic nanocomposites, previously selected through an accurate testing on different natural stones. Three accelerated ageing procedures, based on artificial solar irradiation, heating and rain wash-out, allowed simulating about two years of outdoor exposure to some of the weathering factors to which stones are normally subjected. The results provided quite accurate information about the long-term behaviour of the products and on the role that the stone properties play therein. It was shown that, when the products are able to penetrate deeply enough inside the stone pores, they retain much of their hydrophobising and photocatalytic properties and maintain a good compatibility with the stone substrates, even after partial chemical degradation of the alkyl-silica matrices has occurred on the very stone surface.
机译:在过去的十年中,将二氧化钛纳米颗粒与硅基矩阵结合的光催化纳米复合材料在石材保护研究领域中受到了越来越多的关注,因为它们为石材保护问题提供了有效的多功能方法。然而,必须在研究现实环境条件中的这些纳米复合材料的行为和理解,在当施加在室外表面上施加的效果和兼容性程度的情况下研究这些纳米复合材料的行为。后者是应在任何成功的保护和维护活动的基础上撒谎的关键信息。本研究通过评估通过在不同天然石材上的精确测试中选择的两种硅烷基光催化纳米复合材料的人工老化来提供对该相关主题槽实验室测试的洞察。三种加速老化程序,基于人造太阳照射,加热和雨水冲洗,允许模拟大约两年的户外暴露于通常进行石头的一些风化因子。结果提供了有关产品的长期行为以及石材属性在其中的作用的相当准确的信息。结果表明,当产品能够在石孔内深入渗透时,它们保持其大部分疏水性和光催化性能,并使烷基二氧化硅基质的部分化学降解在烷基 - 二氧化硅基质的部分化学降解之后,它们保持良好的与石材基质相容性发生在石头表面上。

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